Issue
J. Phys. IV France
Volume 06, Number C8, Décembre 1996
ICIFUAS 11
Eleventh International Conference on Internal Friction and Ultrasonic Attenuation in Solids
Page(s) C8-735 - C8-738
DOI https://doi.org/10.1051/jp4:19968159
ICIFUAS 11
Eleventh International Conference on Internal Friction and Ultrasonic Attenuation in Solids

J. Phys. IV France 06 (1996) C8-735-C8-738

DOI: 10.1051/jp4:19968159

Thermal Stress Relaxation in Al-Al2O3 (f) Composites During Thermal Cycling

E. Carreño-Morelli1, S.E. Urreta2, L. Gabella3 and R. Schaller3

1  Centro Atómico Bariloche and Instituto Balseiro, Comisión Nacional de Energía Atómica and Universidad Nacional de Cuyo, 8400 Bariloche (Argentina)
2  Facultad de Matemática, Astronomía y Física, Universidad Nacional de Córdoba, Ciudad Universitaria, 5000 Córdoba, Argentina
3  Ecole Polytechnique Fédérale de Lausanne, Institut de Génie Atomique, PHB-Ecublens, 1015 Lausanne, Switzerland


Abstract
The thermal stress relaxation mechanisms in Al 99.99% reinforced with SAFFIL alumina short fibers have been investigated by mechanical spectroscopy during long period and low temperature thermal cycles (T = 2 K/min, 100 K - 450 K). During these cycles large internal stresses are built in the specimen due to the difference in thermal expansion coefficient between the matrix and the reinforcement. It has been found that the internal friction, the elastic modulus and the zero point drift behaviours are extremely sensitive to these internal stresses and specially to the relaxation mechanism operating : dislocation generation or dislocation creep. The internal friction shows a broad non anelastic maximum during cooling which is attributed to dislocation movement in a continuously developing plastic zone nearby the fibers. The elastic modulus behaviour as a function of temperature leads to define two particular temperatures : Tstart related to the initial growth of plastic zones nearby the fibers and Tend related to their later overlapping. The zero point coordinate describes during each thermal cycle a characteristic trajectory which may be analyzed in terms of a thermal fatigue loop. The study is performed in composites with different volumetric fraction of fibers and matrix strenght.



© EDP Sciences 1996